首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Short echo spectroscopic imaging of the human brain at 7T using transceiver arrays.
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Short echo spectroscopic imaging of the human brain at 7T using transceiver arrays.

机译:使用收发器阵列在7T对人脑进行短回波光谱成像。

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摘要

Recent advances in magnet technology have enabled the construction of ultrahigh-field magnets (7T and higher) that can accommodate the human head and body. Despite the intrinsic advantages of performing spectroscopic imaging at 7T, increased signal-to-noise ratio (SNR), and spectral resolution, few studies have been reported to date. This limitation is largely due to increased power deposition and B(1) inhomogeneity. To overcome these limitations, we used an 8-channel transceiver array with a short TE (15 ms) spectroscopic imaging sequence. Utilizing phase and amplitude mapping and optimization schemes, the 8-element transceiver array provided both improved efficiency (17% less power for equivalent peak B(1)) and homogeneity (SD(B(1)) = +/-10% versus +/-22%) in comparison to a transverse electromagnetic (TEM) volume coil. To minimize the echo time to measure J-modulating compounds such as glutamate, we developed a short TE sequence utilizing a single-slice selective excitation pulse followed by a broadband semiselective refocusing pulse. Extracerebral lipid resonances were suppressed with an inversion recovery pulse and delay. The short TE sequence enabled visualization of a variety of resonances, including glutamate, in both a control subject and a patient with a Grade II oligodendroglioma.
机译:磁体技术的最新进展使得能够构造出能够容纳人体头部和身体的超高磁场磁体(7T及更高)。尽管在7T下执行光谱成像具有内在的优势,增加了信噪比(SNR)和光谱分辨率,但迄今为止,很少有研究报道。此限制主要是由于功率沉积增加和B(1)不均匀。为了克服这些限制,我们使用了具有短TE(15 ms)光谱成像序列的8通道收发器阵列。利用相位和幅度映射及优化方案,8元素收发器阵列既提高了效率(等效峰B(1)降低了17%的功率),又提高了同质性(SD(B(1))= +/- 10%vs + / -22%)。为了最大程度地减少测量J调节化合物(如谷氨酸)的回波时间,我们开发了一个短TE序列,该序列利用了单层选择性激发脉冲,然后是宽带半选择性重聚焦脉冲。脑内脂质共振被反转恢复脉冲和延迟抑制。较短的TE序列可在对照组和II级少突胶质细胞瘤患者中可视化各种共振,包括谷氨酸。

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